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February 11, 2026G3 Genes Genomes Genetics0 citationsOpen Access

Genetic identification of Pid3-1 and its regulatory role in promoting blast resistance in rice

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JLJunhua LiuNHNiqing HeZCZhaoping Cheng

Key Points

  • This research aims to identify and characterize the Pid3-1 gene to understand its role in rice blast resistance.
  • Genetic mapping of rice cultivar Wanhui 66 to locate blast resistance loci.
  • Cloning and sequencing of the Pid3 gene to identify allelic variations in Pid3-1.
  • Utilization of CRISPR/Cas9 to create knockout mutants for functional validation of Pid3-1.
  • Identification of molecular markers associated with Pid3-1 for breeding applications.
  • Discovered a novel blast resistance gene Pid3-1 located on chromosome 6.
  • Identification of three nucleotide substitutions leading to three significant amino acid changes in the Pid3-1 protein.
  • Confirmed the importance of Pid3-1 in controlling the resistance phenotype through knockout mutants.
  • Developed a molecular marker, Indel-6-34, linked to Pid3-1 for potential use in rice breeding.

Abstract

Abstract Rice blast is a destructive rice disease caused by the fungus Magnaporthe oryzae (M. oryzae). Here, we identified a resistance gene from the rice cultivar Wanhui 66 which is resistant to the rice blast Guy11 isolate. Genetic mapping positioned a blast resistance locus to chromosome 6. Employing map-based cloning approach ultimately mapped the novel blast resistance locus to a genomic region of 113 kb that contains the Pid3 gene. Candidate gene prediction and cDNA sequencing indicate that the target resistance gene in the Wanhui 66 is allelic to Pid3, thus it was designated Pid3-1. Further analysis showed that the Pid3-1 has 3 nucleotide substitutions, resulting in 3 amino acid substitutions in the Pid3-1 protein, which significantly affect the structure of the Pid3-1 protein as indicated by the 3-D structure simulation. The CRISPR/Cas9 system was employed to generate a Pid3-1 knockout mutants that confirmed that the Wanhui 66 resistant phenotype is controlled by Pid3-1. A molecular marker, Indel-6-34, cosegregates with Pid3-1 was identified that could have a great impact on ice breeding against blast disease resistance.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/698c1c73267fb587c655eec8https://doi.org/10.1093/g3journal/jkag027
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